Dutta Agniva, Maity Pintu, Das Rajat Kumar, Zussman Eyal
NanoEngineering Group, Faculty of Mechanical Engineering, Technion-Israel Institute of Technology, Haifa 3200003, Israel.
Materials Science Centre, Indian Institute of Technology Kharagpur, Kharagpur, West Bengal 721302, India.
Mater Horiz. 2025 Jun 30;12(13):4901-4914. doi: 10.1039/d4mh01717j.
Hydrogels hold great promise for various applications, from soft robotics to electrolytes in energy storage devices. However, their mechanical strength, stiffness, and toughness are inherently limited, and due to their mutually exclusive nature, it is rare to find reports on the enhancement of both stiffness and toughness properties simultaneously. This study introduces a novel strategy termed "Hofmeister effect induced Arrested chain Rotation and energy Dissipation" (HARD), which synergistically combines ultra-high stiffness and toughness in hydrogels. As a representative example, a dual-cross-linked hydrogel demonstrated an increase in stiffness by ∼7000 fold to 326 MPa and toughness by ∼200 fold to 25.5 MJ m, compared to the corresponding chemically cross-linked hydrogel. It is further elucidated that the Hofmeister effect immobilizes the polymer segmental motion by restricting backbone rotation, utilizing the hydrophobic pendant methyl groups, while the secondary cross-links function as energy-dissipating elements. The synergistic stress transfer from the primary network to the secondary cross-links effectively integrates these typically opposing mechanical traits. Additionally, we applied the HARD strategy to a double-network hydrogel system, demonstrating its versatility and broad applicability. The dynamic and highly tunable mechanical enhancement makes this strategy a powerful tool for advancing hydrogel design across various applications, as demonstrated by case studies on shape recovery and anti-freezing properties.
水凝胶在从软体机器人到储能设备中的电解质等各种应用中具有巨大潜力。然而,它们的机械强度、刚度和韧性本质上是有限的,并且由于它们相互排斥的性质,很少有关于同时提高刚度和韧性的报道。本研究引入了一种名为“霍夫迈斯特效应诱导的链旋转受阻和能量耗散”(HARD)的新策略,该策略在水凝胶中协同结合了超高刚度和韧性。作为一个代表性例子,与相应的化学交联水凝胶相比,一种双交联水凝胶的刚度提高了约7000倍,达到326 MPa,韧性提高了约200倍,达到25.5 MJ/m。进一步阐明,霍夫迈斯特效应通过利用疏水侧链甲基限制主链旋转来固定聚合物链段运动,而二级交联起到能量耗散元件的作用。从主网络到二级交联的协同应力传递有效地整合了这些通常相互对立的机械特性。此外,我们将HARD策略应用于双网络水凝胶系统,证明了其通用性和广泛适用性。如形状恢复和抗冻性能的案例研究所示,动态且高度可调的机械增强使该策略成为推进各种应用中水凝胶设计的有力工具。